论文标题

中子星中的暗物质还是常规物质?如何分辨与紧凑物体的聚结的差异

Dark Matter or Regular Matter in Neutron Stars? How to tell the difference from the coalescence of compact objects

论文作者

Hippert, Maurício, Dillingham, Emily, Tan, Hung, Curtin, David, Noronha-Hostler, Jacquelyn, Yunes, Nicolás

论文摘要

镜子双Higgs模型是(强烈相互作用的)复杂暗物质的候选者,它反映了SM与较重的夸克质量的相互作用。该模型的结果是镜子中子星 - 完全由镜面制成的异国情调,它们明显小于中子恒星,并且在电磁上是黑暗的。这使得在引力波观测中可以检测到的两个镜中性星星的合并,但是我们可以在观察上区分常规的中子星和可能包含某些镜面物质的恒星吗?这是我们在本文中研究的问题,重点是对镜像的两个可能的实现,结合了一个紧凑的物体中的标准模型:(i)由中子星和(ii)镜像中的镜子和(ii)镜像中子星形中心星星结合。关于(i),我们发现(非旋转的)镜像中的中子星不再具有单个质量 - 拉迪乌斯序列,而是存在于二维质量 - 拉迪乌斯平面中。关于(ii),我们发现带有镜子中子星星的二进制系统将跨越更广泛的chirp肿块和完全不同的二进制恋爱关系,从而使合并残留物成为非常轻的黑洞。这样做的含义是,带有高级的Ligo和处女座的重力波观测,并且具有更好的X射线观察可以通过使用更广泛的模型和参数先验的搜索来检测或限制镜像的存在。

The mirror twin Higgs model is a candidate for (strongly-interacting) complex dark matter, which mirrors SM interactions with heavier quark masses. A consequence of this model are mirror neutron stars -- exotic stars made entirely of mirror matter, which are significantly smaller than neutron stars and electromagnetically dark. This makes mergers of two mirror neutron stars detectable and distinguishable in gravitational wave observations, but can we observationally distinguish between regular neutron stars and those that may contain some mirror matter? This is the question we study in this paper, focusing on two possible realizations of mirror matter coupled to standard model matter within a compact object: (i) mirror matter captured by a neutron star and (ii) mirror neutron star-neutron star coalescences. Regarding (i), we find that (non-rotating) mirror-matter-admixed neutron stars no longer have a single mass-radius sequence, but rather exist in a two-dimensional mass-radius plane. Regarding (ii), we find that binary systems with mirror neutron stars would span a much wider range of chirp masses and completely different binary Love relations, allowing merger remnants to be very light black holes. The implications of this are that gravitational wave observations with advanced LIGO and Virgo, and X-ray observations with NICER, could detect or constrain the existence of mirror matter through searches with wider model and parameter priors.

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